Refractive index matched polymeric and preceramic resins for height-scalable two-photon lithography
Полимерные и предкерамические смолы с выровненным показателем преломления для масштабируемой по высоте двухфотонной литографии
2021-01-01
SCID: 54.1/wvn4zy9m
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direct laser writing (DLW-TPP)preceramic resinsrefractive index matchingsilicon oxycarbidetwo-photon polymerization
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Abstract (AI)
two-photon polymerization (DLW-TPP) is one such technique that relies on nonlinear absorption of light to form nanoscale 3D features. Although DLW-TPP provides the required nanoscale resolution, its built height is often limited to less than a millimetre. This height limitation is driven by the need to tightly focus the laser beam at arbitrary depths within the photopolymer. This requirement necessitates matching the photopolymer's refractive index to specific values but the required techniques have not been disseminated widely in the open scientific literature. To address this knowledge gap, we test two universal, different approaches to generate refractive index-matched polymeric and preceramic resins and demonstrate their performance by printing of fine submicron features in 3D structures as tall as 2.5 mm. Specifically, we achieve index-matching by mixing commercially-available resins or covalent modification of functional monomers. This work investigates the relationship of voxel shape to RI mismatch, and presents tuning of RI through mixing and covalent modification to a nonconventional material system of preceramic resin which has never been demonstrated before. We demonstrate the material flexibility by generating 3D silicon oxycarbide structures from preceramic resists while simultaneously eliminating the part-height limitation of conventional DLW-TPP.
Key Findings
1
DLW-TPP built height is typically limited to less than a millimetre due to refractive index (RI) mismatch requirements for tight laser focusing.
2
Index-matched resins enable printing of fine submicron features in 3D structures up to 2.5 mm tall, overcoming conventional DLW-TPP part-height limitations.
3
Preceramic (silicon oxycarbide precursor) resins can be RI-tuned and used to fabricate 3D silicon oxycarbide structures via DLW-TPP.
4
The study investigates how voxel shape depends on RI mismatch and demonstrates tuning of RI through mixing and covalent modification.
5
Two universal approaches—mixing commercially-available resins and covalent modification of functional monomers—can generate refractive index-matched polymeric and preceramic resins.
Research Object
Refractive-index-matched polymeric and preceramic resins used for height-scalable direct laser writing two-photon polymerization (DLW-TPP)
Research Subject
Tuning and matching of refractive index (via resin mixing and covalent monomer modification) and its effect on voxel shape and achievable part height during DLW-TPP, enabling fabrication of tall (up to ~2.5 mm) 3D submicron features and silicon oxycarbide structures
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2021-01-01
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